Simultaneous optimization of thermoelectric and mechanical properties in p-type NbFeSb via entropy engineering

Abstract

NbFeSb-based half-Heusler (HH) alloys have drawn significant interest for their potential as thermoelectric (TE) materials due to their high-temperature stability and substantial potential for power generation. Nevertheless, their practical application remains limited by relatively low electrical conductivity (σ) and high intrinsic lattice thermal conductivity (κ L ). Herein, we employ entropy engineering in the design of Nb 1-x M x FeSb 0.98 Sn 0.02 (x = 0.09, 0.12, 0.15, and 0.18; M denotes Ti, Zr, and Hf in equimolar proportions). Specifically, multi-element doping boosts σ by approximately several orders of magnitude, yielding an excellent peak power factor (PF) of ~58.7 μW cm -1 K -2 for Nb 0.91 M 0.09 FeSb 0.98 Sn 0.02 at 373 K. Entropy-driven multi-scale defects act as efficient phonon scatterers, leading to a low κ L of ~3.1 W m -1 K -1 for Nb 0.82 M 0.18 FeSb 0.98 Sn 0.02 at 923 K. Combined with its enhanced PF of ~31.9 μW cm -1 K -2 , a peak TE figure of merit (zT) of ~0.52 is achieved for Nb 0.82 M 0.18 FeSb 0.98 Sn 0.02 medium-entropy HH alloy at 923 K. Meanwhile, solid solution strengthening and grain refinement yield a high Vickers hardness of ~1118 HV for Nb 0.82 M 0.18 FeSb 0.98 Sn 0.02 . This work demonstrates entropy engineering as an effective strategy for the synergistic optimization of TE and mechanical properties of NbFeSb-based HH alloys, advancing their prospects for practical power generation from waste heat.

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Article information

Article type
Paper
Submitted
04 Feb 2026
Accepted
15 Mar 2026
First published
16 Mar 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Simultaneous optimization of thermoelectric and mechanical properties in p-type NbFeSb via entropy engineering

S. Chen, X. Wang, M. Zhu, J. Liang, W. Zhang, H. Kang, E. Guo, Z. Chen, R. Chen and T. Wang, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA01072E

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